论文标题
温度梯度对离子流体筛选特性的影响
Effect of a Temperature Gradient on the Screening Properties of Ionic Fluids
论文作者
论文摘要
离子流体的静电筛选特性在无数物理过程中至关重要。然而,迄今为止,由于debye-hückel理论的直接扩展,在热填料现象的背景下主要研究了离子导体以热平衡的行为。我们研究了对称离子流体的静态响应如何通过在固定温度剖面下引入静电筛选理论来影响热梯度的存在。通过借用在量子颗粒的半经典近似中使用的数学方法,我们找到了电荷密度渐近衰变的分析溶液,可用于描述系统对外部电荷扰动的非平衡响应以及用于任意离子浓度的非平衡响应。值得注意的是,单调和振荡性筛选方案之间的过渡被认为是温度变化的效果,该温度变化将热平衡结果推广到均衡条件。关于筛分电解质中带电表面的筛选的最终定量示例表明,我们溶液预测的热平衡的偏差通常大于热扩散效应,因此应考虑到对电气双层的全面描述。我们的发现为在离子系统中对非平衡稳态的严格处理铺平了道路,并在能源材料,纳米结构系统和废水回收技术的研究中潜在应用。
The electrostatic screening properties of ionic fluids are of paramount importance in countless physical processes. Yet, the behavior of ionic conductors out of thermal equilibrium has to date mainly been studied in the context of thermodiffusion phenomena by virtue of direct extensions of Debye-Hückel theories. We investigate how the static response of a symmetric ionic fluid is influenced by the presence of a thermal gradient by introducing a theory of electrostatic screening under a stationary temperature profile. By borrowing mathematical methods commonly used in the semiclassical approximation of quantum particles, we find analytical solutions to the asymptotic decay of the charge density which can be used to describe the non-equilibrium response of the system to external charge perturbations and for arbitrary ionic concentrations. Notably, a transition between monotonic and oscillatory screening regimes is observed as an effect of the temperature variation which generalizes known results of thermal equilibrium to out of equilibrium conditions. A final quantitative example on the screening of charged surfaces in aqueous electrolytes shows that the deviation from thermal equilibrium predicted by our solutions is generally larger than thermodiffusion effects, and should therefore be taken into account for a comprehensive description of the electrical double layer. Our findings pave the way to the rigorous treatment of non-equilibrium steady states in ionic systems with potential applications to the study of energy materials, nanostructured systems and waste-heat-recovery technologies.